Laboratory of Plastics and Rubber Technology, Department of Physical Chemistry and Materials Science, Budapest University of Technology and Economics, H-1521 Budapest, P.O. Box 91, Hungary; Institute of Materials and Environmental Chemistry, Research Centre for Natural Sciences, Hungarian Academy of Sciences, H-1519 Budapest, P.O. Box 286, Hungary.
Laboratory of Plastics and Rubber Technology, Department of Physical Chemistry and Materials Science, Budapest University of Technology and Economics, H-1521 Budapest, P.O. Box 91, Hungary; Institute of Materials and Environmental Chemistry, Research Centre for Natural Sciences, Hungarian Academy of Sciences, H-1519 Budapest, P.O. Box 286, Hungary.
Int J Biol Macromol. 2018 Feb;107(Pt A):1203-1211. doi: 10.1016/j.ijbiomac.2017.09.098. Epub 2017 Sep 25.
Blends were prepared from lignin and ethylene-vinyl alcohol (EVOH) copolymers to study the effect of hydrogen bonding interactions on compatibility and structure. The vinyl alcohol (VOH) content of the copolymers changed between 52 and 76 mol%, while the lignin content of the blends varied between 0 and 60 vol%. Low density polyethylene with 0 mol% VOH content was used as reference. The components were homogenized in an internal mixer and they were characterized by various methods including Fourier transform infrared spectroscopy (FTIR), dynamic mechanical analysis, differential scanning calorimetry and scanning electron microscopy. The results of the experiments proved that strong hydrogen bonds form between the two components shown by FTIR spectroscopy, a shift in the relaxation temperatures of the matrix polymer and by the decrease of crystallite size and crystallinity with increasing lignin content. In spite of the strong interactions, heterogeneous structure forms in the studied blends since self-interactions within the neat components are also very strong. The size of dispersed lignin particles is determined by competitive interactions in the blends; stronger EVOH/lignin interactions result in smaller particle size. Although hydrogen bonds are strong, miscible polymer/lignin blends can be prepared only by applying other approaches like plasticization or chemical modification.
将木质素和乙烯-乙烯醇(EVOH)共聚物共混,以研究氢键相互作用对相容性和结构的影响。共聚物中的乙烯醇(VOH)含量在 52-76mol%之间变化,而共混物中木质素的含量在 0-60vol%之间变化。使用 VOH 含量为 0mol%的低密度聚乙烯作为参比。将各组分在内部混合机中进行均化,并通过傅里叶变换红外光谱(FTIR)、动态力学分析、差示扫描量热法和扫描电子显微镜等各种方法进行表征。实验结果表明,FTIR 光谱表明两种组分之间形成了强氢键,通过松弛温度的变化以及随着木质素含量的增加,结晶尺寸和结晶度的降低证实了这一点。尽管存在强相互作用,但由于纯组分内的自相互作用也非常强,因此在研究的共混物中形成了不均匀的结构。分散木质素颗粒的尺寸取决于共混物中的竞争相互作用;EVOH/木质素相互作用越强,颗粒尺寸越小。尽管氢键很强,但只有通过其他方法(如增塑或化学改性)才能制备出可混溶的聚合物/木质素共混物。